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Seeliger, M. W.

Publications and source records attributed to Seeliger, M. W..

3 recordsLinked to original sources

On the location of a "central retina" in mice

The retinal topography of mammals reflects significant influences of the visual environment. In diurnal species, local specializations, such as the visual streak (VS) for panoramic vision and the area centralis or fovea for binocular vision, play a key role in optimizing visual perception and species viability. While the location of these sites is typically considered the retinal center, the definition of a "central retina" is less clear in nocturnal species. In mice, the most frequently used model in ophthalmologic research, the location of a central retina is hardly discernible in retinal images, neither in retinal structure (OCT sections) nor in vascular organization (SLO and angiography). In this study, we compare the murine retina with that of a diurnal rodent, the Mongolian gerbil (MG). We found that the S-opsin transitional zone (OTZ), a region characterized by the change from S-to M-opsin dominance along the dorsoventral opsin gradient in mice, has a similar relative position in the retina to the VS in the Mongolian gerbil, suggesting an evolutionary positional homology between these regions. Further, since the S-opsin-dominant region is optimized for visualizing the sky and the M-opsin-dominant region for visualizing the ground, the OTZ in between -much like the VS- naturally points toward the horizon. We therefore propose considering the OTZ as the position of a "central retinal area" in mice. Determining the anatomical-physiological center is particularly important to obtain meaningful relative measures such as averages across different retinal areas, as the common referencing to the optic nerve head (ONH) in mice does not take into account retinal organization and the eccentric position of the functional center.

neuroscience↗

PGC-1α and PPARs cooperatively mediate photoreceptor neuroprotection in rd1 mouse inherited retinal degeneration

Retinitis pigmentosa (RP) is a group of inherited diseases characterized by a primary rod photoreceptor dysfunction and progressive rod and cone cell death. Due to their very high energy demand, the degeneration of photoreceptors may be linked to insufficient energy supply or metabolic imbalance. Critical transcription factors that regulate metabolism such as peroxisome proliferator-activated receptors (PPARs) and their co-activator PGC-1 have been found to play important roles in neurodegenerative diseases, but their potential roles in RP have yet not been disclosed. In this study, we used organotypic retinal explant cultures derived from the rd1 mouse model for RP to investigate the effects of PPAR, PPAR{gamma}, PPAR{beta}/{delta} agonists, as well as PGC-1 activation and inhibition. Photoreceptor death in the outer nuclear layer (ONL) of the retina was quantified using the TUNEL assay, while in situ activity assays were used to monitor effects of PPARs and PGC-1 on poly (ADP-ribose) polymerase (PARP) and calpain activity. In addition, we performed immunostainings to evaluate poly (ADP-ribose) (PAR) generation and activation of calpain-1 and calpain-2. We found that PPAR{beta}/{delta} agonists had limited effects, while activation of PPAR, PPAR{gamma}, and PGC-1 significantly reduced photoreceptor death and PARP activity in rd1 retina. Conversely, inhibition of PGC-1 had a strong detrimental effect on photoreceptor viability. Activation of the histone deacetylase sirtuin-1, an upstream agonist of PGC-1, had no effect unless it was combined with simultaneous inhibition of PARP. Furthermore, PPAR{gamma} and PGC-1 effectively suppressed overall calpain activity and overactivation of calpain-2, alleviating photoreceptor degeneration caused by Ca2+ imbalance. In summary, our data supports the concept of a PARP-sirtuin-1-PGC-1-PPAR-PARP feedback control that connects defective energy metabolism to photoreceptor degeneration. Specifically, our findings suggest that PPAR, PPAR{gamma}, and PGC-1 cooperate to preserve photoreceptor viability, highlighting PPAR-signaling as a promising target for future therapeutic interventions.

neuroscience↗

A remarkable degree of conformance between the visual streak of the Mongolian gerbil and the human central retina

The Mongolian gerbil (MG) is a day-active rodent that lives in desert-like environments and thus very much relies on vision. To allow for a particularly exact view of the horizon, the region of highest visual acuity, the visual streak (VS), forms a horizontal band across the retina between the projection areas of the sky and the ground. Here, we assessed the retinal basis of this specialized region and compared the findings to the human central high-acuity region culminating in the macula. We found an increased density of cones, elongated photoreceptor outer segments (OSs) and a minimization of intersecting surface vessels to improve quality of vision, all of which is analogous to the human macula. Stunningly, also the area of retinal pigment epithelium (RPE) cells was significantly smaller in the VS region than in the periphery, again similar to what is found in the human macula. Our data therefore suggest that the remarkable degree of conformance between the VS of the MG and the human macula renders the MG a promising rodent, non-primate model of the central human retina.

cell biology↗